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首页> 外文期刊>BMC Medical Research Methodology >Statistical methods to correct for verification bias in diagnostic studies are inadequate when there are few false negatives: a simulation study
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Statistical methods to correct for verification bias in diagnostic studies are inadequate when there are few false negatives: a simulation study

机译:当假阴性很少时,用于校正诊断研究中验证偏差的统计方法不足:模拟研究

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Background A common feature of diagnostic research is that results for a diagnostic gold standard are available primarily for patients who are positive for the test under investigation. Data from such studies are subject to what has been termed "verification bias". We evaluated statistical methods for verification bias correction when there are few false negatives. Methods A simulation study was conducted of a screening study subject to verification bias. We compared estimates of the area-under-the-curve (AUC) corrected for verification bias varying both the rate and mechanism of verification. Results In a single simulated data set, varying false negatives from 0 to 4 led to verification bias corrected AUCs ranging from 0.550 to 0.852. Excess variation associated with low numbers of false negatives was confirmed in simulation studies and by analyses of published studies that incorporated verification bias correction. The 2.5th – 97.5th centile range constituted as much as 60% of the possible range of AUCs for some simulations. Conclusion Screening programs are designed such that there are few false negatives. Standard statistical methods for verification bias correction are inadequate in this circumstance.
机译:背景技术诊断研究的一个共同特征是,诊断金标准的结果主要适用于对所研究测试呈阳性的患者。来自此类研究的数据受制于“验证偏差”。当假阴性很少时,我们评估了用于验证偏差校正的统计方法。方法对筛选研究进行模拟研究,该研究受验证偏见的影响。我们比较了校正后的曲线下面积(AUC)的估计值,以验证验证率和验证机制的变化。结果在单个模拟数据集中,从0到4的假阴性变化导致验证偏差校正的AUC范围从0.550到0.852。在模拟研究以及结合验证偏差校正的已发表研究的分析中,证实了与假阴性数量少相关的过度变异。在某些模拟中,第2.5 –97.5 百分位范围构成了AUC可能范围的60%之多。结论设计筛查程序时,几乎没有假阴性。在这种情况下,用于验证偏差校正的标准统计方法是不够的。

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